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Synthesis of structurally well-defined and liquid-phase-processable graphene nanoribbons

机译:合成结构良好和液相可加工的石墨烯纳米带

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摘要

The properties of graphene nanoribbons (GNRs) make them good candidates for next-generation electronic materials. Whereas 'top-down' methods, such as the lithographical patterning of graphene and the unzipping of carbon nanotubes, give mixtures of different GNRs, structurally well-defined GNRs can be made using a 'bottom-up' organic synthesis approach through solution-mediated or surface-assisted cyclodehydrogenation reactions. Specifically, non-planar polyphenylene precursors were first 'built up' from small molecules, and then 'graphitized' and 'planarized' to yield GNRs. However, fabrication of processable and longitudinally well-extended GNRs has remained a major challenge. Here we report a bottom-up solution synthesis of long (>200 nm) liquid-phase-processable GNRs with a well-defined structure and a large optical bandgap of 1.88 eV. Self-assembled monolayers of GNRs can be observed by scanning probe microscopy, and non-contact time-resolved terahertz conductivity measurements reveal excellent charge-carrier mobility within individual GNRs. Such structurally well-defined GNRs may prove useful for fundamental studies of graphene nanostructures, as well as the development of GNR-based nanoelectronics. © 2014 Macmillan Publishers Limited. All rights reserved.
机译:石墨烯纳米带(GNR)的特性使其成为下一代电子材料的理想选择。尽管“自上而下”的方法(例如石墨烯的光刻图案和碳纳米管的解压缩)会提供不同GNR的混合物,但是可以使用“自下而上”的有机合成方法通过溶液介导的方法制备结构清晰的GNR或表面辅助的环脱氢反应。具体而言,非平面聚苯撑前体首先由小分子“堆积”,然后“石墨化”和“平面化”以产生GNR。然而,可加工和纵向延伸良好的GNR的制造仍然是主要挑战。在这里,我们报告了一种自下而上的溶液合成方法,该方法合成了具有良好定义的结构和1.88 eV的大光学带隙的长(> 200 nm)液相可加工GNR。可以通过扫描探针显微镜观察到GNR的自组装单层,并且非接触时间分辨的太赫兹电导率测量显示出单个GNR内优异的电荷载流子迁移率。此类结构明确的GNR可能对石墨烯纳米结构的基础研究以及基于GNR的纳米电子学的发展很有用。 ©2014 Macmillan Publishers Limited。版权所有。

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